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Rate dependency of incremental capacity analysis (dQ/dV) as a diagnostic tool for lithium-ion batteries

机译:增量容量分析(DQ / DV)的速率依赖性作为锂离子电池的诊断工具

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Incremental capacity analysis (ICA) is a widely used method of characterising state of health (SOH) in secondary batteries through the identification of peaks that correspond to active material phase transformations. For reliable ICA, cells are cycled under low constant currents to minimise resistance and diffusion effects, making deployment into applications such as electric vehicle charging unfeasible. In this work, the influence of charge/discharge rate on ICA is quantitively analysed through peak detection algorithms on two lithium-ion cells with different positive electrodes. Based on these results, a new robust method for faster ICA is introduced which corrects peak shift through SOC dependant resistance measurements using current interrupt. The new technique is evaluated through degradation tests on a Li(NiCoAl)O2/graphite cell. Results demonstrate that ICA during a 6-hour (C/6) charge represents an ideal compromise between diagnostic accuracy and realistic application charge times. ICA at C/6 can predict peak location within 0.59% of a 48-hour charge (C/48) using resistance correction, compared to 1.90% without correction. Under ageing, the C/ 6 charge was able to correctly identify the trend of each peak compared to C/24 charge and maintain peak location to within 2.0%. At rates higher than C/6, the number of identifiable peaks in the ICA reduce, most noticeably in aged cells. After 200 cycles, only one identifiable peak was seen at 1C charge compared to four at C/6 and five at C/24.
机译:增量容量分析(ICA)是通过识别对应于有源材料相变的峰值的二次电池中的健康状态(SOH)的广泛使用方法。对于可靠的ICA,细胞在低恒定电流下循环,以最大限度地减少电阻和扩散效应,使部署到电动车辆充电等应用中不可行。在这项工作中,通过具有不同正电极的两个锂离子电池的峰值检测算法定量分析ICA上的充电/放电速率的影响。基于这些结果,引入了一种更快的ICA的鲁棒方法,其校正了通过使用电流中断的SOC依赖性电阻测量的峰值移位。通过Li(NiCoal)O2 /石墨细胞的降解试验来评估新技术。结果表明,6小时(C / 6)电荷期间的ICA表示诊断准确性和现实应用费用之间的理想折衷。 C / 6的ICA可以使用电阻校正预测48小时充电(C / 48)的0.59%的峰值位置,而无需校正,则为1.90%。在老化下,与C / 24电荷相比,C / 6电荷能够正确识别每个峰的趋势,并将峰值位置保持在2.0%以内。在高于C / 6的速率下,ICA中可识别峰的数量减少,在老年细胞中最明显。在200次循环之后,在C / 24的C / 6和5的四个相比,在1C电荷下仅观察一个可识别的峰。

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